{"job_id":"anim-job-f57c9828-07b5-412c-a78a-0fd3a75294d7","request_id":"bulk-2026-05-20T10-21-44-856Z-17-physics.11.laws-of-motion.newton-non-inertial","status":"complete","asset":{"primary_url":"https://storage.googleapis.com/pupiltree-animation-assets/anim-job-f57c9828-07b5-412c-a78a-0fd3a75294d7/walkthrough.mp4","thumbnail_url":"https://storage.googleapis.com/pupiltree-animation-assets/anim-job-f57c9828-07b5-412c-a78a-0fd3a75294d7/thumb.jpg","transcript_url":"https://storage.googleapis.com/pupiltree-animation-assets/anim-job-f57c9828-07b5-412c-a78a-0fd3a75294d7/transcript.vtt","interactive_url":"https://storage.googleapis.com/pupiltree-animation-assets/anim-job-f57c9828-07b5-412c-a78a-0fd3a75294d7/index.html","scenefile_url":"https://storage.googleapis.com/pupiltree-animation-assets/anim-job-f57c9828-07b5-412c-a78a-0fd3a75294d7/scene-source.json","duration_seconds":15,"byte_size":467735,"renderer":"html_three_js_local","parameters":{"style":"auto","executor":"native_render_executor","localPath":"/app/storage/assets/anim-job-f57c9828-07b5-412c-a78a-0fd3a75294d7","control_count":2,"interactivity":"none","simulation_id":"physics.11.laws_of_motion.newton_non_inertial","renderer_style":"three_js","durationSeconds":15,"render_manifest":{"jobId":"anim-job-f57c9828-07b5-412c-a78a-0fd3a75294d7","request":{"gap":{"topic":"newton-second-law-non-inertial","severity":"moderate","error_type":"wrong_assumption","memory_state":"fragile","display_topic":"Newton's 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title and the key physical context.","narration":"Newton's Law in Non-Inertial Frames"},{"label":"Mistake","visual":"Show the wrong approach and why it seems plausible.","narration":"Applied F=ma in a rotating frame without pseudo force"},{"label":"Correction","visual":"Show the right approach step by step.","narration":"In non-inertial frames, include pseudo force opposite frame acceleration."},{"label":"Concept","visual":"Highlight the key formula and the governing relationship.","narration":"F = ma. pseudo force"}],"title":"Newton's Law in Non-Inertial Frames","sceneCode":"<!doctype html>\n<html lang=\"en\">\n<head>\n  <meta charset=\"utf-8\"/>\n  <meta name=\"viewport\" content=\"width=device-width, initial-scale=1\"/>\n  <title>Newton's Laws in Non-Inertial Frames</title>\n  <style>\n    :root{--bg:#0e121a;--panel:#1c232e;--line:#303449;--accent:#fc884f;--text:#faf9f8;--muted:#9f9ea1;--blue:#627da5;--green:#8decb0;--red:#df8279;}\n    *{box-sizing:border-box;}\n    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18px;padding:0;color:var(--muted);display:grid;gap:6px;}\n    .stage{width:min(1020px,95%);aspect-ratio:16/9;border:1px solid #445862;border-radius:14px;position:relative;overflow:hidden;background:radial-gradient(circle at 50% 38%,#2f4a57,#0f1418 72%);box-shadow:0 18px 60px rgba(0,0,0,.45), inset 0 0 90px rgba(255,255,255,.03);}\n    .stage::before{content:\"\";position:absolute;inset:0;background:linear-gradient(180deg,rgba(255,255,255,.06),transparent 34%);pointer-events:none;}\n    .legend{position:absolute;right:12px;top:12px;padding:8px 10px;border-radius:10px;border:1px solid #465a64;background:rgba(9,14,18,.58);font-size:0.8rem;color:var(--muted);backdrop-filter:blur(4px);}\n    @media(max-width:900px){main{grid-template-columns:1fr;}aside{border-right:0;border-bottom:1px solid var(--line);}}\n  </style>\n</head>\n<body>\n<main>\n  <aside>\n    <h1>Newton's Laws in Non-Inertial Frames</h1>\n    <p class=\"sub\">Why ignoring pseudo forces leads to wrong predictions.</p>\n    <p class=\"formula\">F_total = F_real + F_pseudo</p>\n    <label class=\"control\"><span>Frame ω (rad/s): <strong id=\"v-omega\">2.5</strong></span><input id=\"c-omega\" type=\"range\" min=\"0.5\" max=\"5\" step=\"0.5\" value=\"2.5\"/></label>\n    <label class=\"control\"><span>Applied Force: <strong id=\"v-force\">3</strong> N</span><input id=\"c-force\" type=\"range\" min=\"0\" max=\"8\" step=\"1\" value=\"3\"/></label>\n    <label class=\"control\"><span>Inertial Mass: <strong id=\"v-mass\">1</strong> kg</span><input id=\"c-mass\" type=\"range\" min=\"0.5\" max=\"2.5\" step=\"0.5\" value=\"1\"/></label>\n    <ul>\n      <li><strong>❌ Wrong:</strong> Only use F=ma ignoring frame rotation</li>\n      <li><strong>✓ Correct:</strong> Include centrifugal + Coriolis pseudo forces</li>\n      <li><strong>Key Idea:</strong> Non-inertial observers must add fictitious forces to predict motion correctly</li>\n    </ul>\n  </aside>\n  <section>\n    <div class=\"stage\" id=\"stage\">\n      <div 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